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A Model for Transport Phenomena in a Cross-Flow Ultrafiltration Module with Microchannels

机译:具有微通道的错流超滤模块中的运输现象模型

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摘要

Cross-flow ultrafiltration of macromolecular solutions in a module with microchannels is expected to have the advantages of fast diffusion from the membrane surface and a high ratio of membrane surface area to feed liquid volume. Cross-flow ultrafiltration modules with microchannels are expected to be used for separation and refining and as membrane reactors in microchemical processes. Though these modules can be applied as a separator connected with a micro-channel reactor or a membrane reactor, there have been few papers on their performance. The purpose of this study was to clarify the relationship between operational conditions and performance of cross-flow ultrafiltration devices with microchannels. In this study, Poly Vinyl Pyrrolidone (PVP) aqueous solution was used as a model solute of macromolecules such as enzymes. Cross-flow ultrafiltration experiments were carried out under constant pressure conditions, varying other operational conditions. The permeate flux decreased in the beginning of each experiment. After enough time passed, the permeate flux reached a constant value. The performance of the module was discussed based on the constant values of the flux. It was observed that the permeate flux increased with increasing transmembrane pressure (TMP) and feed flow rate, and decreased with an increase of feed liquid concentration. A model of the transport phenomena in the feed liquid side channel and the permeation through the membrane was developed based on the concentration and velocity distributions in the feed side channel. The experimental results were compared with those based on the model and the performance of the ultrafiltration module is discussed.
机译:在具有微通道的模块中,大分子溶液的错流超滤有望具有从膜表面快速扩散,膜表面积与进料液体积比高的优点。带有微通道的错流超滤模块有望用于分离和精制,并在微化学过程中用作膜反应器。尽管这些模块可以用作与微通道反应器或膜反应器连接的分离器,但有关其性能的论文很少。这项研究的目的是澄清具有微通道的错流超滤设备的运行条件和性能之间的关系。在这项研究中,聚乙烯吡咯烷酮(PVP)水溶液用作大分子(例如酶)的模型溶质。横流超滤实验在恒定压力条件下进行,改变了其他操作条件。在每个实验开始时,渗透通量降低。经过足够的时间后,渗透通量达到恒定值。基于磁通的恒定值讨论了模块的性能。观察到渗透通量随着跨膜压力(TMP)和进料流速的增加而增加,并随着进料液浓度的增加而降低。基于进料侧通道中的浓度和速度分布,建立了进料液体侧通道中的传输现象和穿过膜的渗透的模型。将实验结果与基于模型的实验结果进行了比较,并讨论了超滤模块的性能。

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